- (A) Note that f (0) = = 0 and that f ′(x) exists on the given interval. By the MVT, there is
a number, c, in the interval such that f ′(c) = 0. If c = 1, then 6c^2 − 6 = 0. (−1 is not in the
interval.)
dmanu
(dmanu)
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